Li Chang, Yang Ruisheng, Huang Xinchao, Fu Quanhong, Fan Yuancheng, Zhang Fuli
Key Laboratory of Light Field Manipulation and Information Acquisition Ministry of Industry and Information Technology and School of Physical Science and Technology Northwestern Polytechnical University, Xi'an 710129, China.
European Center for Quantum Sciences (CESQ-ISIS, UMR7006), University of Strasbourg and CNRS, Strasbourg, France.
Phys Rev Lett. 2024 Apr 12;132(15):156601. doi: 10.1103/PhysRevLett.132.156601.
Non-Hermiticity has recently emerged as a rapidly developing field due to its exotic characteristics related to open systems, where the dissipation plays a critical role. In the presence of balanced energy gain and loss with environment, the system exhibits parity-time (PT) symmetry, meanwhile as the conjugate counterpart, anti-PT symmetry can be achieved with dissipative coupling within the system. Here, we demonstrate the coherence of complex dissipative coupling can control the transition between PT and anti-PT symmetry in an electromagnetic metamaterial. Notably, the achievement of the anti-PT symmetric phase is independent of variations in dissipation. Furthermore, we observe phase transitions as the system crosses exceptional points in both anti-PT and PT symmetric metamaterial configurations, achieved by manipulating the frequency and dissipation of resonators. This work provides a promising metamaterial design for broader exploration of non-Hermitian physics and practical application with a controllable Hamiltonian.
由于与开放系统相关的奇异特性,其中耗散起着关键作用,非厄米性最近已成为一个快速发展的领域。在与环境能量得失平衡的情况下,系统表现出宇称-时间(PT)对称性,同时作为共轭对应物,通过系统内的耗散耦合可以实现反PT对称性。在这里,我们展示了复耗散耦合的相干性可以控制电磁超材料中PT和反PT对称性之间的转变。值得注意的是,反PT对称相的实现与耗散变化无关。此外,我们观察到当系统在反PT和PT对称超材料配置中穿过例外点时会发生相变,这是通过操纵谐振器的频率和耗散来实现的。这项工作为更广泛地探索非厄米物理和具有可控哈密顿量的实际应用提供了一种有前景的超材料设计。